Solubility behavior and thermodynamic modeling of sodium monosulfoaluminate (“U‐phase”) in cementitious systems

Author:

Collin Marie12ORCID,Prentice Dale P.12,Arnold Ross R.12,Ellison Kirk3,Balonis Magdalena4,Simonetti Dante25,Sant Gaurav N.1246

Affiliation:

1. Laboratory for the Chemistry of Construction Materials (LC2) Department of Civil and Environmental Engineering University of California Los Angeles California USA

2. Institute for Carbon Management University of California Los Angeles California USA

3. Electric Power Research Institute Charlotte North Carolina USA

4. Department of Materials Science and Engineering University of California Los Angeles California USA

5. Department of Chemical and Biomolecular Engineering University of California Los Angeles California USA

6. California Nanosystems Institute (CNSI) University of California Los Angeles California USA

Abstract

AbstractThe “U‐phase,” a sodium‐containing (alumino‐ferrite‐monosubstituent) AFm phase, has been observed to form in sodium‐enriched highly alkaline cementitious systems, for example, of relevance to nuclear waste, and saline industrial brine management. But, minimal information is available of the U‐phase's (e.g., solubility or thermodynamic properties) due to its limited stability and its tendency to transform into ettringite or monosulfoaluminate. Herein, the U‐phase was systematically synthesized at four temperatures (5, 15, 25, and 50°C) and fully characterized in terms of its thermochemical properties. The average composition of the synthesized U‐phase (4CaO·Al2O3·1.85SO3·0.85Na2O·12H2O) deviates slightly from typical disclosures in the literature. The solubility product of the U‐phase formation was measured from conditions of oversaturation. The measured thermodynamic data accurately predicted experimental observations of U‐phase formation in cementitious environments. In general, it was noted that the U‐phase forms and persists (i.e., remains stable) at pH > 13.7 and [Na+] concentrations superior to 1 mol/L.

Publisher

Wiley

Subject

Materials Chemistry,Ceramics and Composites

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